A tibial tunnel guide which enables accurate tibial tunnel placement both inside and outside the knee for use in endoscopic ACL reconstruction. The guide utilizes a consistency between the PCL and the ACL anatomic structure to accurately locate the ideal position of the tibial tunnel. The guide includes an arc shaped outrigger with a slot along its length, a sighting device secured to the outrigger in the slot and adapted to receive a guide pin, and a grasping tool adjustably secured to the outrigger in the slot having a grasper at one end. The grasper is arranged to grasp the base of the PCL near the intercondylar floor from the anteromedial portal. The sighting device is fixed relative to the position of the crotch of the grasper and locates the guide pin at an ideal position for tibial tunnel placement.

Patent
   5269786
Priority
Feb 20 1992
Filed
Feb 20 1992
Issued
Dec 14 1993
Expiry
Feb 20 2012
Assg.orig
Entity
Large
88
6
EXPIRED

REINSTATED
1. A method of marking a proper locating of a tibial tunnel for arthroscopic anterior cruciate ligament reconstruction by referencing a base of a posterior cruciate ligament at an intercondylar floor, said method comprising the steps of:
inserting a referencing means into a knee having a damaged anterior cruciate ligament, said referencing means being coupled with an outrigger;
located a distal end of said referencing means at a base portion of the posterior cruciate ligament near the intercondylar floor;
advancing a sighting device connected to said outrigger towards the knee until the sighting device is directly adjacent the knee, said sighting device being adapted to receive a guide pin for marking said tibial tunnel location;
inserting a guide pin into said sighting device to mark said tibial tunnel location;
drilling said guide pin into the knee; and
removing the referencing means, sighting device and outrigger, thereby leaving said guide pin in position for drilling said tunnel, wherein said guide pin is automatically positioned at an intra-articular entry point disposed a predetermined distance from a leading edge of the posterior cruciate ligament at the intercondylar floor.
2. A method of marking a proper location of a tibial tunnel for arthroscopic anterior cruciate ligament reconstruction as recited in claim 1, wherein said predetermined distance is 10 mm anterior to the leading edge of the posterior cruciate ligament at the intercondylar floor.
3. A method of marking a proper location of a tibial tunnel for arthroscopic anterior cruciate ligament reconstruction as recited in claim 1, further comprising the step of:
sliding said referencing means along a longitudinal slot in said outrigger until said sighting device points to a location 1 cm above a superior border of a pes anserinus insertion point on the tibia after locating the distal end of said referencing means at the base portion of the posterior cruciate ligament near the intercondylar floor and prior to advancing said sighting device toward said knee.
4. A method of marking a proper location of a tibial tunnel for arthroscopic anterior cruciate ligament reconstruction as recited in claim 1, further comprising the step of:
sliding said sighting device along a longitudinal slot in said outrigger until said sighting device points to a location 1 cm above a superior border of a pes anserinus insertion point on the tibia after locating the distal end of said referencing means at the base portion of the posterior cruciate ligament near the intercondylar floor and prior to advancing said sighting device toward said knee.

1. Field of the Invention

The present invention relates to a tibial guide

tibial tunnel placement both inside and outside the knee in endoscopic ACL reconstruction.

2. Description of the Related Art

In the past, the intra-articular entry point of the tibial tunnel has tended to be placed too far anterior, resulting in roof impingement and delayed graft failure. See, e.g., S. Howell, "A Rationale for Predicting ACL Graft Inpingement by the Intercondylar Roof, A Magnetic Resonance Imaging Studey", Am. Jour. Sports Med., Vol. 19, No. 3, pp. 276 (1991), herein incorporated by reference. This problem has occurred largely due to the absence of any constant bony landmarks in the intercondylar notch which can be used to orient placement of guide systems for accurate reproducible tibial tunnel guide pin placement.

Also, the tibial tunnel exit point outside the knee has tended to be placed too close to t he joint line. This results in a short tibial tunnel such that the tibial bone plug of a completed bone patellar tendon bone autograft reconstruction resides outside the tibial tunnel and interference screw fixation cannot be used. A second problem caused by a high tibial tunnel exit point is that the angle of the tibial tunnel in reference to the joint line is too small, which will not allow transtibial tunnel instrumentation to reach the isometric area on the lateral femoral condyle to create a femoral socket for graft fixation.

Accordingly, it is an object of the present invention to provide an apparatus and method which overcomes the above-described problems in the prior art.

The present invention achieves the foregoing objective by utilizing the anatomic structure of the knee to consistently locate the ideal location of the tibial tunnel.

The one constant anatomic structure in the intercondylar notch of the anterior cruciate ligament (ACL) deficient knee is the posterior cruciate ligament (PCL). See, e.g., C. Morgan et al., "Arthroscopic Meniscus Repair Evaluated by Second Look Arthroscopy," Am. Jour. Sports Med., Vol. 19, No. 6, p. 632 (1991), herein incorporated by reference. In the intact knee, there is an important anatomic interaction between the ACL and the PCL at their midpoints, whereby the intact ACL actually wraps around or bends over the PCL in terminal extension. This dynamic interaction is an integral part of the "screw home" mechanism of the knee. Ideally, during ACL reconstruction, the entry point in the knee for the tibial tunnel should be made far enough posterior to reconstruct this important relationship between the ACL graft and the intact PCL.

The proper entry point for tibial tunnel guide pin placement resides 10 mm anterior to the leading edge of the PCL at the level of the intercondylar floor. A 10 mm diameter graft placed through a 10 mm tibial tunnel centered at this point will: (1) reach an isometric femoral socket directly in line with the tibial tunnel with the knee in 70-80 degrees of flexion; (2) avoid roof impingement in full extension with a minimal notchplasty; and (3) reconstruct the "screw home" mechanism and the interaction between the ACL graft and the intact PCL. These concepts form the basis for the present invention -an arthroscopic guide system for tibial tunnel placement oriented by the position of the posterior cruciate ligament.

The present invention consists of an arthroscopic grasps the base portion of the PCL near the intercondylar floor from an anteromedial portal and automatically positions an associated external sighting device so that it delivers a guide pin to an intra-articular entry point 10 mm proximal to the crotch of the grasping portion, and thus, 10 mm from the leading edge of the PCL at the intercondylar floor. The grasping tool and sighting device are positioned relative to each other by an arc shaped outrigger. The outrigger includes a slot along its length in which the grasping tool is slidably mounted and the sighting device is fixedly mounted. The sighting device is adapted to receive a guide pin which marks the proper entry point into the knee for drilling of the tibial tunnel.

The grasping tool includes a scissor type ratchet grip, a shaft, and a grasper disposed at the end of the shaft. The grasper is closed by squeezing the scissor grip together and locked in its closed position around the PCL by a ratchet member between two finger holes on the grip. The shaft and the scissor grip are secured in the slot of the outrigger by a screw and nut arrangement. In an alternate embodiment, the grasping tool is fixedly mounted to the outrigger and the position of the sighting device is slidably mounted to the outrigger.

The method of the present invention includes the steps of inserting the grasper into the knee, grasping a base portion posterior cruciate ligament (PCL) near the intercondylar floor with the grasper, sliding the grasping tool along the slot of the outrigger until the sighting device points to a location 1 cm above the superior border of the pes anserinus insertion on the tibia, locking the position of the outrigger, advancing the sighting device towards the knee until it is directly adjacent the knee, inserting a guide pin into the sighting device, drilling the guide pin into the knee, and removing the apparatus, thereby leaving the guide pin in position for drilling the tibial tunnel, the guide pin being automatically positioned at an intra-articular entry point disposed 10 mm from the leading edge of the posterior cruciate ligament at the intercondylar floor.

In an alternate embodiment, the grasping tool is fixed to the outrigger and the sighting device is slid along the slot of the outrigger until the sighting device points to the location 1 cm above the superior border of the pes anserinus insertion on the tibia.

The guide of the present invention is advantageously designed such that, when the grasper is placed around the base of the PCL, the intra-articular guide pin entry point will always be 10 mm anterior to the leading edge of the PCL. By basing the outside tibial tunnel entry point on the pes anserinus insertion (i.e., I cm above the superior border of the pes anserinus insertion), variable anatomy regarding patellar tendon length is accommodated and the tibial tunnel is made at the proper angle such that the tunnel will be of proper length to use interference screw fixation.

Other features and advantages of the present invention will become apparent from the following description of the invention when read in conjunction with the accompanying drawings, in which:

FIG. 1 shows the apparatus of the invention in the final position after location of the tibial tunnel; and

FIG. 2 shows a top view of the grasper on the PCL.

FIG. 3 shows the screw and nut attachment of the grasping tool to the outrigger.

FIG. 4 is an end view of the outrigger of the present invention.

Referring to FIG. 1, the present invention is a tibial guide which utilizes the consistent anatomy of the posterior cruciate ligament (PCL) and the anterior cruciate ligament (ACL) to accurately locate the proper position of a tibial tunnel both inside and outside the knee for use in endoscopic ACL reconstruction.

The apparatus basically consists of an outrigger 11, a sighting device 12, and a grasping tool 13. The outrigger 11 is arc shaped and includes a slot 14 along its length. The slot 14 is adapted to receive the sighting device 12 and the grasping tool 13. In a preferred embodiment, the grasping tool 13 is slidably arranged in the slot 14 and the sighting device 12 is fixed in the slot by a set screw. The slot 14 and grasping tool 13 are machine grooved to provide for smooth sliding of the grasping tool 13 in the slot 14. In an alternate embodiment, the grasping tool 13 is fixed in the slot 14 and the sighting device 12 is slidably arranged in the slot.

The sighting device 12 is adapted to receive a guide pin 15 which marks the proper location for the tibial tunnel. Sighting device 12 is arranged to be advanced towards the knee into engagement with the skin after it has been properly positioned and prior to insertion of the guide pin. Due to the arcuate shape of outrigger 11, sighting device 12 always locates the guide pin 15 at a position 10 mm anterior to the leading edge of the PCL at the intercondylar floor.

Grasping tool 13 includes a scissor grip 16 at one end and a grasper 19 at the opposite end connected by a shaft 18. The grasper is closed by squeezing the scissor grip 16 and locked in its closed position by a ratchet 17 disposed between two finger holes 20 of scissor grip 16. The grasper 19 closes through a conventional pin and hinge arrangement (not shown), and, as shown in FIG. 2, is adapted to grasp the base of the PCL near the intercondylar floor. The other end of shaft 18 is releasibly secured to the scissor grip 16 by a nut member 20. The nut member 20 is disposed on the knee side of the outrigger 11 and engages a corresponding screw member 21 disposed on the opposite side of the outrigger 11. The screw member 21 is integral with the scissor grip 16. When nut member 20 is loosened by counter-clockwise rotation, grasping tool 13 is free to slide along the slot 14 of the outrigger 11.

The method of the invention will now be described in conjunction with FIGS. 1 and 2. First, the grasping tool 13 is inserted into the knee with the damaged ACL. The grasper 19 is then placed around the base of the PCL and closed by squeezing scissor grip 16. Next, the grasper is locked around the PCL in its closed position by ratchet 17. The outrigger 11 is then slid relative to the grasping tool 13 (via slot 14) until the sighting device 12, which is fixed to the outrigger 11, points to a location 1 cm above the superior border of the pes anserinus insertion on the tibia. The outrigger 11 is then locked in this position by tightening nut member 20 and screw member 21. Next, the sighting device 12 is advanced towards the knee to a position directly adjacent the skin. A guide pin 15 is then inserted into the sighting device and drilled into the knee. At this point, the tibial tunnel guide is removed, leaving the guide pin 15 in position so that a cannulated drill may be placed over the guide pin 15 for drilling of the tibial tunnel.

This method is consistently accurate amongst various anatomical sizes. The guide utilizes the only constant structure in the knee, i.e. the relationship between the PCL and the ACL, to position the guide pin such that the intra-articular guide pin entry point will always be 10 mm anterior to the leading edge of the PCL. Variable anatomy is accommodated by basing the outside tibial tunnel entry point on the pes anserinus insertion (i.e., I cm above the superior border of the pes anserinus insertion), and the tibial tunnel is made at the proper angle such that it will be of proper length for interference screw insertion. The resultant tibial tunnel is also properly angled for drilling a femoral tunnel directly in line with the tibial tunnel.

Although the present invention has been described in relation to particular embodiments thereof, many other variations and modifications and other uses will become apparent to those skilled in the art. It is preferred, therefore, that the present invention be limited not by the specific disclosure herein, but only by the appended claims.

Morgan, Craig D.

Patent Priority Assignee Title
10052098, May 22 2002 Orthopaedic Biosystems Ltd., Inc. Suture passing surgical instrument
10064632, Feb 19 2016 System and technique for accessing extra articular lesions or abnormalities or intra osseous lesions or bone marrow lesions
10265062, Feb 07 2012 Arthrocare Corporation Surgical instrument for manipulating and passing suture
10682133, Oct 31 2016 Smith & Nephew, Inc. Suture passer and grasper instrument and method
10758251, Dec 21 2016 University of Virginia Patent Foundation Adjustable device for identifying a target location for a tibial tunnel and related method thereof
10765420, Apr 24 2014 Smith & Nephew, Inc Suture passer
5397357, Feb 18 1993 Arthrex, Inc. Method for preparing a bone-tendon-bone core graft
5415651, Feb 18 1993 Arthrex, Inc. Work station for preparing a bone-tendon-bone core graft
5423823, Feb 18 1993 ARTHREX, INC Coring reamer
5562664, Feb 20 1992 Arthrex Inc. Drill guide with target PCL-oriented marking hook
5575801, Feb 17 1994 Arthrex, Inc. Method and apparatus for arthroscopic rotator cuff repair
5584839, Dec 12 1994 Intraarticular drill guide and arthroscopic methods
5603716, Feb 16 1995 Arthrex Inc. Method of ligament reconstruction using double socket graft placement and fixation
5643272, Sep 02 1994 Biomet Manufacturing, LLC Method and apparatus for tibial resection
5785714, Feb 18 1997 Arthrex, Inc. Method of ACL reconstruction using double socket graft placement and fixation
5810827, Sep 02 1994 Biomet Manufacturing, LLC Method and apparatus for bony material removal
5919196, Feb 16 1995 Arthrex, Inc. Method and apparatus for osteochondral autograft transplantation
5941883, Jun 04 1996 Apparatus and method for reconstructing ligaments
5968050, Dec 05 1997 Smith & Nephew, Inc. Positioning a tibial tunnel
6019767, Jul 16 1990 Biomet Sports Medicine, LLC Tibial guide
6056754, Sep 02 1994 Biomet Manufacturing, LLC Method and apparatus for patella resection and guide handle
6187011, Dec 05 1997 Smith & Nephew, Inc. Positioning a tibial tunnel
6210415, Feb 18 2000 Lab Engineering & Manufacturing, Inc. Surgical drill guide
6254604, Jul 16 1990 Biomet Sports Medicine, LLC Tibial guide
6254605, Jul 16 1990 Biomet Sports Medicine, LLC Tibial guide
6364886, Jun 04 1996 Apparatus and method for reconstructing ligaments
6547795, Aug 13 2001 DEPUY ACROMED, INC Surgical guide system for stabilization of the spine
6592588, Feb 16 1995 ARTHREX, INC Apparatus for osteochondral autograft transplantation
6685709, Jun 04 1996 Apparatus and method for reconstructing ligaments
6723107, Apr 19 1999 Orthopaedic Biosystems Ltd.; ORTHOPAEDIC BIOSYSTEMS LTD Method and apparatus for suturing
6984237, May 22 2002 Orthopaedic Biosystems Ltd., Inc. Suture passing surgical instrument
7201756, Mar 24 2003 Device and method to assist in arthroscopic repair of detached connective tissue
7238189, Mar 18 2003 ARTHREX, INC ACL reconstruction technique using retrodrill
7344541, Sep 02 1994 Puget BioVentures LLC Methods and apparatus for femoral and tibial resection
7550007, Oct 26 2005 BIOMET U S RECONSTRUCTION, LLC; Biomet, Inc; ZB MANUFACTURING, LLC; Biomet Manufacturing, LLC Osteochondral allografts
7569059, Apr 20 2005 Arthroscopic Innovations LLC Method and apparatus for surgical repair
7637910, Mar 21 2006 Arthrex, Inc. Method of ACL reconstruction using dual-sided rotary drill cutter
7758597, Apr 11 2000 Arthrocare Corporation Dual function suturing apparatus and method
7771441, Apr 20 2005 Arthroscopic Innovations LLC Method and apparatus for providing suture in a passageway
7815645, Jan 14 2004 Biomet Manufacturing, LLC Methods and apparatus for pinplasty bone resection
7833230, Apr 20 2005 Arthroscopic Innovations LLC Method and apparatus for providing a passageway
7833244, Apr 20 2005 Arthroscopic Innovations LLC Suture fixation device and method for surgical repair
7857814, Jan 14 2004 Biomet Manufacturing, LLC Methods and apparatus for minimally invasive arthroplasty
7879048, Jun 26 2002 Arthrocare Corporation Suture capture device
7935151, Mar 05 2001 Biomet Manufacturing, LLC Femoral prosthetic implant
7955341, Apr 20 2005 Arthroscopic Innovations LLC Method and apparatus for providing suture in a passageway
7967822, Sep 02 1994 Puget BioVentures LLC Methods and apparatus for orthopedic implants
8021368, Jan 14 2004 Biomet Manufacturing, LLC Methods and apparatus for improved cutting tools for resection
8062377, Mar 05 2001 Biomet Manufacturing, LLC Methods and apparatus for knee arthroplasty
8088167, Mar 05 2001 Biomet Manufacturing, LLC Femoral prosthetic implant
8114083, Jan 14 2004 Biomet Manufacturing, LLC Methods and apparatus for improved drilling and milling tools for resection
8147505, Mar 23 2009 Arthrocare Corporation Surgical instrument for manipulating surgical suture and methods of use
8162967, Oct 16 2003 BIOMET U S RECONSTRUCTION, LLC; Biomet, Inc; ZB MANUFACTURING, LLC; Biomet Manufacturing, LLC Method and apparatus for coring and reaming of bone
8287545, Jan 14 2004 Biomet Manufacturing, LLC Methods and apparatus for enhanced retention of prosthetic implants
8298238, Jan 14 2004 Biomet Manufacturing, LLC Methods and apparatus for pivotable guide surfaces for arthroplasty
8298239, Feb 21 2008 Covidien LP Tibial guide for ACL repair having interchangeable and/or rotatable outrigger
8303592, Oct 05 2007 Biomet Manufacturing, LLC System for forming a tendon-bone graft
8322256, Oct 05 2007 Biomet Manufacturing, LLC System for forming a tendon-bone graft
8323289, Feb 21 2008 Covidien LP Tibial guide for ACL repair having left/right docking configuration
8323291, Jul 27 2006 KARL STORZ SE & CO KG Partial aiming device for targeting an arthroscopic operation site for a medical intervention
8353914, Mar 08 2004 Biomet Manufacturing, LLC Methods and apparatus for improved profile based resection
8430932, Mar 05 2001 Biomet Manufacturing, LLC Femoral prosthetic implant
8444652, Mar 23 2006 Imperial Innovations Limited Reconstruction of anterior cruciate ligaments
8523864, Oct 26 2005 BIOMET U S RECONSTRUCTION, LLC; Biomet, Inc; ZB MANUFACTURING, LLC; Biomet Manufacturing, LLC Instrumentation for the preparation and transplantation of osteochondral allografts
8562629, Oct 24 2006 Arthrocare Corporation Suture device having selective needle actuation and related method
8603095, Jun 07 1995 Puget BioVentures LLC Apparatuses for femoral and tibial resection
8641718, Oct 19 2010 Biomet Manufacturing, LLC Method and apparatus for harvesting cartilage for treatment of a cartilage defect
8690898, May 22 2002 Smith & Nephew, Inc. Suture passing surgical instrument
8728084, Jun 27 2011 BIOMET U S RECONSTRUCTION, LLC; Biomet, Inc; ZB MANUFACTURING, LLC; Biomet Manufacturing, LLC Apparatus for repairing bone defects
8740906, Jan 14 2004 Biomet Manufacturing, LLC Method and apparatus for wireplasty bone resection
8821509, Oct 27 2012 DANAMED, INC Surgical instrument and method of using same
8870884, Jun 27 2011 BIOMET U S RECONSTRUCTION, LLC; Biomet, Inc; ZB MANUFACTURING, LLC; Biomet Manufacturing, LLC Method for repairing bone defects
8882774, Oct 26 2005 BIOMET U S RECONSTRUCTION, LLC; Biomet, Inc; ZB MANUFACTURING, LLC; Biomet Manufacturing, LLC Instrumentation for the preparation and transplantation of osteochondral allografts
9060789, Feb 10 2011 Method and apparatus for preparing and fusion of small joints
9066804, Feb 20 1996 Biomet Manufacturing, LLC Method and apparatus for femoral and tibial resection
9192391, Mar 05 2001 Biomet Manufacturing, LLC Method for minimally invasive total knee arthroplasty
9198676, Jul 26 2011 HOWMEDICA OSTEONICS CORP PCL guides for drilling tibial and femoral tunnels
9211118, Nov 16 2009 Arthrocare Corporation Suture passer
9289223, Oct 27 2012 DANAMED, INC Surgical guide instrument and system for ACL reconstruction and method of using same
9301766, Jun 27 2011 BIOMET U S RECONSTRUCTION, LLC; Biomet, Inc; ZB MANUFACTURING, LLC; Biomet Manufacturing, LLC Apparatus for repairing bone defects
9421022, Mar 05 2001 Biomet Manufacturing, LLC Method and apparatus for total knee arthroplasty
9456900, Oct 19 2010 Biomet Manufacturing, LLC Method and apparatus for harvesting cartilage for treatment of a cartilage defect
9554811, Feb 10 2011 Method and apparatus for preparing and fusion of small joints
9693786, Jun 27 2011 BIOMET U S RECONSTRUCTION, LLC; Biomet, Inc; ZB MANUFACTURING, LLC; Biomet Manufacturing, LLC Method for repairing bone defects
9814539, Jan 14 2004 Biomet Manufacturing, LLC Methods and apparatus for conformable prosthetic implants
9861355, Jun 16 2004 Smith & Nephew, Inc. Suture passing
9888915, Feb 14 2011 Smith & Nephew, Inc Method and device for suture removal
9936943, Aug 07 2014 SALVUS MEDICAL LLC Suture passing surgical device with atraumatic grasper preventing accidental perforations
Patent Priority Assignee Title
4781182, Oct 03 1986 Apparatus and method for use in performing a surgical operation
4813407, Jul 30 1986 Sesamoid bone clamp
5009661, Apr 24 1990 MICHELSON, GARY KARLIN Protective mechanism for surgical rongeurs
5112335, Jul 11 1989 LABOUREAU, JACQUES-PHILIPPE Instrument for marking and drilling femoral and tibial insertion tunnels
5112337, Feb 05 1991 Ethicon, Inc Variable angle, selective length tibial drill guide
5163940, Mar 04 1991 Smith & Nephew, Inc Surgical drill guide for tibia
//
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Feb 20 1992Arthrex Inc.(assignment on the face of the patent)
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